Modeling and performance evaluation of a new multi-physical coupled system of photovoltaic-thermoelectric-interfacial evaporation

IF 9.9 1区 工程技术 Q1 ENERGY & FUELS
Yunfeng Qiu , Meixiang Zhang , Yahui Wang , Xiao Guo , Zhiguo Shi , Haibo Wang , Xiang Yu
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Abstract

Interfacial evaporation, as an emerging seawater desalination technology, combines it with photovoltaic power generation technology and utilizes photovoltaic waste heat to drive interfacial evaporation, which is an effective measure for solving the problem of water and electricity shortage in off-grid island areas. Accurate calculations for different coupled forms of solar energy utilization systems are necessary to reduce the cost of preliminary experiments. In this paper, a coupled photo-electric-thermal-interfacial evaporation model is established based on photoelectric conversion model, heat transfer model, thermoelectric conversion model, and interfacial evaporation model, which is used to calculate the effects of meteorological parameters such as solar irradiance, ambient temperature, and ambient wind speed on the output performance of photovoltaic-interfacial evaporation and photovoltaic-thermoelectric-interfacial evaporation coupled systems, and experimental studies are carried out to validate the reliability of the model. The results show that the model has an average simulation error of 3.97 % for Photovoltaic module output power, 2.29 % for photovoltaic surface temperature, 6.11 % for thermoelectric generator output power, and 8.77 % for evaporation. Under the same conditions, the coupled photovoltaic-interfacial evaporation system has a lower net solar power generation efficiency than the coupled photovoltaic-thermoelectric-interfacial evaporation system but has a higher solar energy utilization and interfacial evaporation rate. As the emissivity of the photovoltaic surface increases, the net solar power generation efficiency of the system rises, but the interfacial evaporation rate and the utilization rate of solar energy of the system decrease. With the increase of output voltage of photovoltaic module, the net solar power generation efficiency and solar energy utilization rate of the system exhibit a trend of first increasing and then decreasing, while the interface evaporation rate of the system shows the change trend of first decreasing and then increasing.
新型光伏-热电-界面蒸发多物理耦合系统的建模与性能评价
界面蒸发作为一种新兴的海水淡化技术,将其与光伏发电技术相结合,利用光伏余热驱动界面蒸发,是解决离网海岛地区水电短缺问题的有效措施。对不同耦合形式的太阳能利用系统进行精确计算是降低前期实验成本的必要条件。本文在光电转换模型、传热模型、热电转换模型和界面蒸发模型的基础上,建立了光电-热电-界面耦合蒸发模型,计算了太阳辐照度、环境温度、环境风速等气象参数对光伏-界面蒸发和光伏-热电-界面蒸发耦合系统输出性能的影响。并进行了实验研究,验证了模型的可靠性。结果表明,该模型对光伏组件输出功率的平均仿真误差为3.97%,对光伏表面温度的平均仿真误差为2.29%,对热电发电机输出功率的平均仿真误差为6.11%,对蒸发的平均仿真误差为8.77%。在相同条件下,光伏-热电-界面耦合蒸发系统的净太阳能发电效率低于光伏-热电-界面耦合蒸发系统,但太阳能利用率和界面蒸发率更高。随着光伏表面发射率的增加,系统的净太阳能发电效率上升,但系统的界面蒸发速率和太阳能利用率下降。随着光伏组件输出电压的增加,系统的净太阳能发电效率和太阳能利用率呈现先增加后降低的趋势,系统的界面蒸发率呈现先降低后增加的变化趋势。
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来源期刊
Energy Conversion and Management
Energy Conversion and Management 工程技术-力学
CiteScore
19.00
自引率
11.50%
发文量
1304
审稿时长
17 days
期刊介绍: The journal Energy Conversion and Management provides a forum for publishing original contributions and comprehensive technical review articles of interdisciplinary and original research on all important energy topics. The topics considered include energy generation, utilization, conversion, storage, transmission, conservation, management and sustainability. These topics typically involve various types of energy such as mechanical, thermal, nuclear, chemical, electromagnetic, magnetic and electric. These energy types cover all known energy resources, including renewable resources (e.g., solar, bio, hydro, wind, geothermal and ocean energy), fossil fuels and nuclear resources.
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